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New heuristic and evolutionary operators for the multi-objective urban transit routing problem

机译:多目标城市公交路线问题的新型启发式和进化算子

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The urban transit routing problem (UTRP) involves finding efficient routes in a public transport system. However, developing effective heuristics and metaheuristics for the UTRP is hugely challenging because of the vast search space and multiple constraints that make even the attainment of feasible results exceedingly difficult, as the problem size increases. Moreover, progress with academic research on the UTRP appears to be seriously hampered by: 1) a lack of benchmark data, and 2) the complex and diverse range of methods used in the literature to evaluate solution quality. It is not currently possible for researchers to effectively compare the performance of their algorithms with anyone else's. This paper presents new problem-specific genetic operators within a multi-objective evolutionary framework, and furthermore proposes an effective and efficient heuristic method for seeding the population with feasible route sets. In addition new data sets are provided and made available for download, to aid future researchers. Excellent results are presented for Mandl's problem, which is currently the only benchmark available, while the results obtained for the new data sets provide a challenge for future researchers to beat.
机译:城市公交路线问题(UTRP)涉及在公共交通系统中寻找有效的路线。但是,由于庞大的搜索空间和多重约束,随着问题规模的扩大,甚至难以获得可行的结果,为UTRP开发有效的启发式方法和元启发式方法也面临着巨大的挑战。此外,关于UTRP的学术研究进展似乎受到以下因素的严重阻碍:1)缺乏基准数据,以及2)文献中用于评估溶液质量的方法种类繁多。目前,研究人员不可能有效地将其算法的性能与其他人的算法进行比较。本文提出了多目标进化框架内特定于问题的新遗传算子,并进一步提出了一种有效可行的启发式方法,以可行的路径集为种群播种。另外,提供了新的数据集并可供下载,以帮助将来的研究人员。对于Mandl问题,这是目前唯一可用的基准,给出了出色的结果,而从新数据集获得的结果为未来的研究人员提供了挑战。

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